EP3265143A1 - Methods for adversely affecting biofilms - Google Patents
Methods for adversely affecting biofilmsInfo
- Publication number
- EP3265143A1 EP3265143A1 EP16758375.6A EP16758375A EP3265143A1 EP 3265143 A1 EP3265143 A1 EP 3265143A1 EP 16758375 A EP16758375 A EP 16758375A EP 3265143 A1 EP3265143 A1 EP 3265143A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- biofilm
- polymer
- functional group
- polymerised
- residue
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
Classifications
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K31/00—Medicinal preparations containing organic active ingredients
- A61K31/74—Synthetic polymeric materials
- A61K31/785—Polymers containing nitrogen
-
- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01N—PRESERVATION OF BODIES OF HUMANS OR ANIMALS OR PLANTS OR PARTS THEREOF; BIOCIDES, e.g. AS DISINFECTANTS, AS PESTICIDES OR AS HERBICIDES; PEST REPELLANTS OR ATTRACTANTS; PLANT GROWTH REGULATORS
- A01N47/00—Biocides, pest repellants or attractants, or plant growth regulators containing organic compounds containing a carbon atom not being member of a ring and having no bond to a carbon or hydrogen atom, e.g. derivatives of carbonic acid
- A01N47/40—Biocides, pest repellants or attractants, or plant growth regulators containing organic compounds containing a carbon atom not being member of a ring and having no bond to a carbon or hydrogen atom, e.g. derivatives of carbonic acid the carbon atom having a double or triple bond to nitrogen, e.g. cyanates, cyanamides
- A01N47/42—Biocides, pest repellants or attractants, or plant growth regulators containing organic compounds containing a carbon atom not being member of a ring and having no bond to a carbon or hydrogen atom, e.g. derivatives of carbonic acid the carbon atom having a double or triple bond to nitrogen, e.g. cyanates, cyanamides containing —N=CX2 groups, e.g. isothiourea
- A01N47/44—Guanidine; Derivatives thereof
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61L—METHODS OR APPARATUS FOR STERILISING MATERIALS OR OBJECTS IN GENERAL; DISINFECTION, STERILISATION OR DEODORISATION OF AIR; CHEMICAL ASPECTS OF BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES; MATERIALS FOR BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES
- A61L15/00—Chemical aspects of, or use of materials for, bandages, dressings or absorbent pads
- A61L15/16—Bandages, dressings or absorbent pads for physiological fluids such as urine or blood, e.g. sanitary towels, tampons
- A61L15/22—Bandages, dressings or absorbent pads for physiological fluids such as urine or blood, e.g. sanitary towels, tampons containing macromolecular materials
- A61L15/24—Macromolecular compounds obtained by reactions only involving carbon-to-carbon unsaturated bonds; Derivatives thereof
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61L—METHODS OR APPARATUS FOR STERILISING MATERIALS OR OBJECTS IN GENERAL; DISINFECTION, STERILISATION OR DEODORISATION OF AIR; CHEMICAL ASPECTS OF BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES; MATERIALS FOR BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES
- A61L15/00—Chemical aspects of, or use of materials for, bandages, dressings or absorbent pads
- A61L15/16—Bandages, dressings or absorbent pads for physiological fluids such as urine or blood, e.g. sanitary towels, tampons
- A61L15/42—Use of materials characterised by their function or physical properties
- A61L15/44—Medicaments
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61L—METHODS OR APPARATUS FOR STERILISING MATERIALS OR OBJECTS IN GENERAL; DISINFECTION, STERILISATION OR DEODORISATION OF AIR; CHEMICAL ASPECTS OF BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES; MATERIALS FOR BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES
- A61L27/00—Materials for grafts or prostheses or for coating grafts or prostheses
- A61L27/28—Materials for coating prostheses
- A61L27/34—Macromolecular materials
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61L—METHODS OR APPARATUS FOR STERILISING MATERIALS OR OBJECTS IN GENERAL; DISINFECTION, STERILISATION OR DEODORISATION OF AIR; CHEMICAL ASPECTS OF BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES; MATERIALS FOR BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES
- A61L27/00—Materials for grafts or prostheses or for coating grafts or prostheses
- A61L27/50—Materials characterised by their function or physical properties, e.g. injectable or lubricating compositions, shape-memory materials, surface modified materials
- A61L27/54—Biologically active materials, e.g. therapeutic substances
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61L—METHODS OR APPARATUS FOR STERILISING MATERIALS OR OBJECTS IN GENERAL; DISINFECTION, STERILISATION OR DEODORISATION OF AIR; CHEMICAL ASPECTS OF BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES; MATERIALS FOR BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES
- A61L29/00—Materials for catheters, medical tubing, cannulae, or endoscopes or for coating catheters
- A61L29/08—Materials for coatings
- A61L29/085—Macromolecular materials
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61L—METHODS OR APPARATUS FOR STERILISING MATERIALS OR OBJECTS IN GENERAL; DISINFECTION, STERILISATION OR DEODORISATION OF AIR; CHEMICAL ASPECTS OF BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES; MATERIALS FOR BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES
- A61L29/00—Materials for catheters, medical tubing, cannulae, or endoscopes or for coating catheters
- A61L29/14—Materials characterised by their function or physical properties, e.g. lubricating compositions
- A61L29/16—Biologically active materials, e.g. therapeutic substances
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P31/00—Antiinfectives, i.e. antibiotics, antiseptics, chemotherapeutics
- A61P31/04—Antibacterial agents
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61L—METHODS OR APPARATUS FOR STERILISING MATERIALS OR OBJECTS IN GENERAL; DISINFECTION, STERILISATION OR DEODORISATION OF AIR; CHEMICAL ASPECTS OF BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES; MATERIALS FOR BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES
- A61L2300/00—Biologically active materials used in bandages, wound dressings, absorbent pads or medical devices
- A61L2300/40—Biologically active materials used in bandages, wound dressings, absorbent pads or medical devices characterised by a specific therapeutic activity or mode of action
- A61L2300/404—Biocides, antimicrobial agents, antiseptic agents
Definitions
- the present invention relates in general to biofilms.
- the invention relates to a method of adversely affecting a biofilm.
- a biofilm is an established aggregation or community of microorganisms that adhere to each other on a biotic or abiotic surface or at an interface and, together with a matrix of extracellular polymeric substance (EPS) secreted by the microorganisms (sometimes referred to in the art as "slime”), form a film structure.
- EPS extracellular polymeric substance
- Gram-positive bacteria such as Staphylococcus aureus, Coagulase-negative Staphylococcus, and Streptococcus sp.
- Gram-negative bacteria such as Klebsiella pneumoniae and Pseudomonas aeruginosa
- a fungal pathogen such as Candida sp.
- Biofilm-related infections outnumber those caused by planktonic microorganisms.
- the fungus Candida albicans, and the bacteria Staphylococcus aureus and Staphylococcus epidermidis, are among the most common causes of medical device-associated infections.
- HAIs Healthcare Acquired Infections
- Bloodstream infections caused by Candida species and Staphylococcus aureus are often associated with high overall mortality.
- the presence of a biofilm formed from these types of microorganisms on the surface of a medical device that is provided to an immunocompromised patient can pose a high risk factor for mortality of that patient.
- biofilm related infections can be mono- or polymicrobial, and can occur at multiple sites of a subject. Approximately 20%-40% of the cases of candidaemia were reportedly accompanied by bacteremia, with Staphylococcus species being the predominant accompanying pathogens, and the trend is rising.
- the microbial species can benefit each other.
- Beneficial interactions have been observed between S. aureus and C. albicans, such as higher microorganism load and increased antimicrobial resistance of the polymicrobial growth mode relative to single species biofilms.
- S. aureus becomes more resistant to vancomycin and daptomycin than as a monoculture.
- Staphylococcus epidermidis Another bacterial species, Staphylococcus epidermidis, has been shown to protect C. albicans from the action of the antifungal drugs fluconazole and amphotericin B when growing together in polymicrobial biofilms.
- the enhanced drug resistance in polymicrobial biofilms has been attributed to components of the EPS secreted by fungi and bacteria. It is thought that the major culprit in biofilm drug resistance are the carbohydrates in the extracellular matrix, for example 1,3 ⁇ -glucan, through sequestration of the antimicrobial compounds. Other extracellular components have also been implicated in antimicrobial resistance.
- a fragment of the cell surface mucin Msb2 that is secreted by C. albicans contributes to daptomycin resistance of S.
- the present invention therefore provides a method of adversely affecting a biofilm, the method comprising exposing the biofilm to a composition comprising an effective amount of polymer that incorporates within its backbone structure a first polymerised residue of ethylenically unsaturated monomer, said first polymerised monomer residue comprising a covalently bound moiety that (i) presents pendant from the backbone structure, and (ii) comprises a cationic functional group or precursor functional group thereof.
- polymer used in accordance with the invention has advantageously been found to function as a potent anti-microbial agent and exert an adverse affect on biofilms. For example, exposing a biofilm to the polymer has been found to kill microorganisms that are embedded in and/or form part of the biofilm. Polymers used in accordance with the invention have been found to outperform the efficacy of conventional antifungal and antibacterial drugs for treating biofilms, particularly in an in vitro or in vivo setting.
- polymer in accordance with the invention advantageously has been found to be highly effective at killing microorganisms that are embedded in and/or form part of polymicrobial biofilms, for example polymicrobial biofilms comprising Candida albicans and Staphylococcus aureus..
- polymer used in accordance with the invention may be referred to herein as an anti-microbial or anti-biofilm agent.
- polymer used in accordance with the invention further incorporates within its backbone structure a second polymerised residue of ethylenically unsaturated monomer, said second polymerised monomer residue comprising a covalently bound hydrophobic moiety that presents pendant from the backbone structure.
- polymer used in accordance with the invention comprises both the first and second polymerised residues
- the invention may therefore be described in terms of a method of adversely affecting an established biofilm, the method comprising contacting the biofilm with a composition comprising an effective amount of polymer that incorporates within its backbone structure first and second polymerised residues of ethylenically unsaturated monomer, said first polymerised monomer residue comprising a covalently bound moiety that (i) presents pendant from the backbone structure, and (ii) comprises a cationic functional group or a precursor functional group thereof, said second polymerised monomer residue comprising a covalently bound hydrophobic moiety that presents pendant from the backbone structure.
- polymer used in accordance with the invention is a copolymer.
- the copolymer may be a random, alternating, block or statistical copolymer.
- the biofilm which is adversely affected according to the present invention may be a monomicrobial or polymicrobial biofilm.
- the method according to the invention has surprisingly been found to be effective at adversely affecting polymicrobial biofilms.
- the biofilm is a polymicrobial biofilm.
- the biofilm is a polymicrobial biofilm comprising Gram-positive bacterium and a fungal pathogen.
- the polymer (used in accordance with the invention) is the only antimicrobial agent to which the biofilm is exposed.
- the biofilm is exposed to no other antimicrobial agent other than the polymer (used in accordance with the invention).
- the composition comprises no other antimicrobial agent other than the polymer (used in accordance with the invention).
- a biofilm adversely affected according to the present invention may comprise, or consist essentially of, one or more microorganisms selected from Gram-positive bacteria such as Staphylococcus aureus, Staphylococcus epidermidis, Coagulase-negative Staphylococcus, Streptococcus sp., and mycobacterium tuberculosis, Gram-negative bacteria such as Klebsiella pneumoniae and Pseudomonas aeruginosa, and fungal pathogens such as Candida sp., and Candida albicans.
- Gram-positive bacteria such as Staphylococcus aureus, Staphylococcus epidermidis, Coagulase-negative Staphylococcus, Streptococcus sp., and mycobacterium tuberculosis
- Gram-negative bacteria such as Klebsiella pneumoniae and Pseudomonas aeruginosa
- fungal pathogens such as Candida sp., and Candida
- the biofilm adversely affected according to the present invention comprises, or consists essentially of, one or both microorganisms selected from Candida albicans and Staphylococcus aureus.
- the method according to the invention may be particularly effective for adversely affecting a biofilm located on or in a subject.
- the present invention further provides a method of adversely affecting a biofilm located on or in a subject, the method comprising exposing the biofilm to a composition comprising an effective amount of polymer by administering the composition to the subject, wherein the polymer incorporates within its backbone structure a first polymerised residue of ethylenically unsaturated monomer, said first polymerised monomer residue comprising a covalently bound moiety that (i) presents pendant from the backbone structure, and (ii) comprises a cationic functional group or a precursor group thereof.
- the present invention also provides a composition suitable for administration to a subject on or in which is located a biofilm, the composition comprising a pharmacologically acceptable carrier and an effective amount of polymer that incorporates within its backbone structure a first polymerised residue of ethylenically unsaturated monomer, said first polymerised monomer residue comprising a covalently bound moiety that (i) presents pendant from the backbone structure, and (ii) comprises a cationic functional group or a precursor functional group thereof.
- the composition according to the invention will typically be administered to a subject having an infectious disease, condition or disorder associated with, characterised by, or caused by the presence of a biofilm in or on the subject.
- the present invention also provides a composition suitable for administration to a subject when used in the treatment of an infectious disease, condition or disorder associated with, characterised by, or caused by the presence of a biofilm in or on the subject, the composition comprising a pharmacologically acceptable carrier and polymer that incorporates within its backbone structure a first polymerised residue of ethylenically unsaturated monomer, said first polymerised monomer residue comprising a covalently bound moiety that (i) presents pendant from the backbone structure, and (ii) comprises a cationic functional group or precursor functional group thereof.
- the present invention further provides use of polymer in the manufacture of a medicament for adversely affecting a biofilm, the polymer incorporating within its backbone structure a first polymerised residue of ethylenically unsaturated monomer, said first polymerised monomer residue comprising a covalently bound moiety that (i) presents pendant from the backbone structure, and (ii) comprises a cationic functional group or a precursor functional group thereof.
- the present invention also provides use of polymer in the manufacture of a medicament for the treatment of an infectious disease, condition or disorder associated with, characterised by, or caused by the presence of a biofilm in or on a subject, the polymer incorporating within its backbone structure a first polymerised residue of ethylenically unsaturated monomer, said first polymerised monomer residue comprising a covalently bound moiety that (i) presents pendant from the backbone structure, and (ii) comprises a cationic functional group or a precursor functional group thereof.
- the manufactured medicament comprises the polymer and a pharmacologically acceptable carrier.
- the polymer is used in the manufacture of a medicament for killing microorganisms that form part of a biofilm located on or in a subject.
- compositions comprising polymer according to the invention have advantageously been found to function as an effective and efficient lock solution.
- the present invention further provides a method of performing antimicrobial lock therapy on a medical device having a biofilm adhered thereto, the method comprising exposing the biofilm to a composition comprising an effective amount of polymer that incorporates within its backbone structure a first polymerised residue of ethylenically unsaturated monomer, said first polymerised monomer residue comprising a covalently bound moiety that (i) presents pendant from the backbone structure, and (ii) comprises a cationic functional group or precursor functional group thereof.
- the present invention further provides an antimicrobial lock solution for use in antimicrobial lock therapy, the composition comprising a pharmacologically acceptable carrier and a polymer that incorporates within its backbone structure a first polymerised residue of ethylenically unsaturated monomer, said first polymerised monomer residue comprising a covalently bound moiety that (i) presents pendant from the backbone structure, and (ii) comprises a cationic functional group or precursor functional group thereof.
- Figure 1 illustrates the structure of a polymer suitable for use according to the invention in the form of guanylated polymethacrylates PG3 and PG4.
- the polymers were synthesised from the monomers 2-guanidinoethyl methacrylate (2-GEMA) and methyl methacrylate (MMA);
- Figure 2 illustrates that fungus-derived extracellular matrix assists S. aureus association into polymicrobial biofilms.
- SEM Scanning electron microscopy
- SEM Scanning electron microscopy
- C S. aureus CFUs in polymicrobial biofilm formed by C. albicans strain DAY 185 wild type or bgllAA mutant strains were determined using viable count quantification, as described in the Examples section. The number of bacterial cells was expressed relative to the number of C. albicans cells in the biofilm. Error bars represent standard deviation from three independent biological repeats performed in triplicate;
- FIG. 3 illustrates that polymer according to the invention is efficient at killing polymicrobial C. albicans-S. aureus biofilm.
- CLSM reconstructions show the 3D staining pattern for live cells (SYTO-9, green) and dead cells (PI, red).
- Biofilms formed by S. aureus and/or C. albicans established over a twenty-four hour period were exposed to antimicrobial agents prepared in RPMI-1640 for 18 hours and then stained with BacLight Live/Dead Viability kit (3.35 uM SYTO-9 and 20 uM propidium iodide). The experiments were performed twice and representative images are shown;
- Figure 4 illustrates polymer according to the invention outperforms current antimicrobial-drug combinations in eradicating mixed fungal-bacterial biofilms. Survival of cells in S. aureus-C. albicans polymicrobial biofilms upon antimicrobial exposure. Log % survival is a logarithm format of the percentage of surviving cells for statistical analysis. For example, log % survival of -2 stands for approximately 1 % (10 " ) of the original population persisting following antimicrobial treatment. The lower the log % survival is, the better established biofilm-killing efficacy of the antimicrobial agents. The experiment was done with 3 biological repeats in duplicate, shown are averages and the standard deviation; Figure 5 illustrates the role for extracellular matrix in the susceptibility of C.
- albicans biofilms to polymer according to the invention.
- Efficacy of guanylated polymethacrylates against monomicrobial biofilms formed by C. albicans DAY 185 wild type and bgl2AA mutant was tested by treatment of the established biofilms overnight in the presence or absence of PG3, PG4 or fluconazole as control.
- the percentage of remaining established biofilm was calculated by dividing the CFUs of established biofilms exposed to drugs with the CFUs of biofilms exposed to drug-free growth medium. The experiment was done with 3 biological repeats in triplicate, shown are averages and the standard deviation;
- Figure 6 illustrates an assessment of the polymicrobial biofilm formation
- B Semi-quantitative CV assay shows S. aureus and C. albicans synergistically forms single and polymicrobial biofilms in RPMI-1640. Error bars represent standard deviation; and
- Figure 7 illustrates the gene expression in wild type and bgl2 mutant established biofilms.
- RT-PCR revealed no difference between the WT and bgl2 mutant biofilms in the expression level of ALS3, ALS1, HWP1, EAP1 and BCR1, encoding C. albicans surface-associated adhesins and a transcriptional regulator of biofilm formation.
- biofilm refers to an established aggregation or community of microorganisms that adhere to each other on a biotic or abiotic surface or at an interface and, together with a matrix of extracellular polymeric substance (EPS) secreted by the microorganisms (sometimes referred to in the art as “slime”), form a film-like structure.
- EPS extracellular polymeric substance
- biofilm is not intended to be reference to a mere microorganism cluster or microorganisms in a planktonic state. Those skilled in the art can readily detect the presence of an established biofilm using known techniques.
- biofilm may comprise that microorganism(s), consists essentially of that microorganism(s) (i.e. the microorganism(s) in question is the predominant species or type of microorganism(s) of the biofilm), or consist of that microorganism(s) (i.e. the microorganism(s) in question is the only species or type of microorganism(s) of the biofilm).
- microorganism or associated terms such as "microbial” and “microbial organism”, is intended to mean any organism that exists as a microscopic cell that is included within the domains of archaea bacteria or eukarya. Accordingly, the term is intended to encompass prokaryotic or eukaryotic cells or organisms having a microscopic size and includes bacteria, archaea and eubacteria of all species as well as eukaryotic microorganism such as yeast and fungi.
- biofilm forming microorganism therefore refers to any microorganism that is capable of forming a biofilm, including monomicrobial and polymicrobial biofilms.
- a biofilm By “adversely affecting" a biofilm, or a biofilm being “adversely affected” is intended to mean that the viability of the biofilm is compromised in some way.
- a biofilm will be adversely affected if the number of live microorganisms that form part of the biofilm is reduced.
- a biofilm may also be adversely affected if its growth is inhibited, supressed, retarded or prevented.
- the expression "adversely affecting" abiofilm is intended to mean killing microorganisms that form part of the biofilm.
- Microorganisms that "form part of a biofilm may be located at a surface of, or embedded within, the biofilm.
- anti-microbial agent is intended to mean any agent that alone, or in combination with another agent, is capable of killing or inhibiting the growth of one or more species of microorganisms.
- Reference herein to "exposing" the biofilm to the composition of polymer used in accordance with the invention is intended to mean bringing the biofilm into contact with the composition or polymer. Exposing the biofilm to the composition or polymer may be achieved by any suitable means and includes application of the composition or polymer to the biofilm and administration of the composition or polymer to a subject comprising the biofilm.
- the terms “exposing”, “administering” and “contact” and grammatical variations thereof may be used to interchangeably throughout the specification.
- the expression "effective amount” refers to the amount of a substance (e.g. a composition comprising polymer used in accordance with the invention) sufficient to achieve a desired result, which in the case of the present invention is to adversely affect abiofilm.
- the exact amount required to achieve the desired result will vary depending on various factors such as a subject or a situation under consideration, the composition of the biofilm, the volume or size of the biofilm to be exposed to the composition, the environment in which the biofilm is located and the means by which exposing the biofilm to the composition is conducted.
- An effective amount can be provided for in one or more applications, administrations or dosages and is not intended to be limited to a particular formulation, administration route or application method. Accordingly, it is not practical to specify an exact "effective amount”. Taking into account the particular circumstances, a person skilled in the art could readily determine the "effective amount” through routine experimentation.
- references herein to a "subject” should be understood to encompass humans, primates (e.g. monkeys), livestock animals (e.g. sheep, pigs, cattle, horses, donkeys and goats), laboratory test animals (e.g. mice, rabbits, rats and guinea pigs), companion animals (e.g. dogs and cats) and captive wild animals (e.g. lions, tigers, zebra, kangaroos and deer).
- the term "subject” will generally refer to a human or non-human animal who will receive, or who has received, treatment for a condition caused by a biofilm.
- treatment includes reducing the severity of an existing condition, amelioration of the symptoms of a particular condition or preventing or otherwise reducing the risk of developing a particular condition.
- administration refers to the act of giving a drug, prodrug, or other agent, or therapeutic treatment (e.g. a composition or polymer used in accordance with the present invention) to a physicological system (e.g. a subject or invivo, invitro, exvivo cells, tissue and organs).
- routes of administration include, but are not limited to, respiratorally, intratracheally, nasopharyngeally, intravenously, intraperitoneally, subcutaneously, intracranially, intradermally, intramuscularly, intraoccularly, intrathecally, intracereberally, intranasally, infusion, orally, rectally, via IV drip patch and implant.
- the composition or polymer used in accordance with the invention may also be administered or applied directly to the biofilm.
- compositions that do not substantially produce adverse reactions, for example toxic, allergic or analogical reactions, when administered to a subject.
- pharmaceutically acceptable or pharmaceutically acceptable carrier or composition is intended to be a substance suitable for administration to a subject in its own right. In other words, administration of the carrier per se, the polymer used in accordance with the invention, the composition according to the invention comprising a carrier and any other constituent component of the composition, to a subject will not result in unacceptable toxicity, including allergenic responses and disease states.
- the carrier may be a liquid, gel or solid substrate.
- liquid carriers examples include, but are not limited to, phosphate buffered saline solution, water, emulsions (for example water in oil or oil in water emulsions), ethanol, polyol (for example glycerol, propylene glycol and liquid polyethylene glycol, and the like), vegetable oils, and combinations thereof.
- pharmacologically acceptable solid carriers include, but are not limited to, metals, ceramics, plastics, textiles and combinations thereof.
- the term "medical device” includes any material or device that is used on, in, or through a subjects' body. Such use may, for example, be in the course of medical treatment of the subject for a particular disease, condition or injury. Medical devices include, but are not limited to items such as implants, wound care devices and drug delivery devices. Examples of medical implants include urinary catheters, intravascular catheters, dialysis shunts, wound drain tubes, skin sutures, vascular grafts, implantable measures, intraocular devices, heart valves and the like.
- wound care devices include, but are not limited to, wound dressings, biological graft materials, tape closures and dressings, and surgical incise drapes.
- drug delivery devices include, but are not limited to, needles, drug delivery skin patches, drug delivery mucosal patches and medical sponges.
- a composition according to the invention may be or form part of a medical device.
- the method according to the invention comprises exposing a biofilm to the composition described herein.
- the biofilm is adversely affected upon being exposed to the composition.
- the biofilm may be adversely affected by its growth being prevented or inhibited, or by the number of viable microorganisms that form part of the biofilm being reduced.
- composition used in accordance with the invention is cytostatic or cytotoxic to the biofilm.
- composition being cytostatic to the biofilm is meant that microorganisms that form the biofilm are prevented or inhibited from growth or replication.
- composition being cytotoxic to the biofilm is meant the number of viable microorganisms that form part of the biofilm is reduced (e.g. where microorganisms that form part of the biofilm are killed).
- the invention therefore provides a method of killing microorganisms that form part of a biofilm, the method comprising features as outlined herein.
- the composition used in accordance with the invention may present as the polymer per se or the polymer may be provided in combination with a suitable a carrier.
- the carrier may be a pharmacologically acceptable carrier.
- the carrier may be a liquid, gel or solid substrate.
- the polymer When the carrier is in the form of a liquid or gel, the polymer will typically be dissolved or dispersed in the liquid or gel.
- the carrier When the carrier is in the form of a solid substrate, the polymer may be absorbed within the substrate and/or form a coating on the substrate.
- the solid substrate may be porous (i.e. contain voids or holes).
- composition used in accordance with the invention comprises an effective amount of polymer that incorporates within its backbone structure a first polymerised residue of ethylenically unsaturated monomer.
- polymerised residue of ethylenically unsaturated monomer is intended to mean the reaction residue formed as a result of free radical polymerisation of ethylenically unsaturated monomer which provides for the polymer chain. It is the ethylenically unsaturated group of the monomer that actively participates in the free radical polymerisation reaction. Those skilled in the art will appreciate that such a monomer reaction will provide for a carbon- carbon segment or residue (-C-C-) within the backbone structure of the so formed polymer chain. Polymer used in accordance with the invention may therefore be described as an addition polymer (i.e. not a condensation polymer).
- Polymer used in accordance with the invention incorporates a first polymerised monomer residue comprising a covalently bound moiety that (i) presents pendant from the backbone structure, and (ii) comprises a cationic functional group or a precursor functional group thereof.
- the moiety will therefore be covalently bound and in pendant formation to the -C-C- segment.
- the cationic functional group or a precursor functional group thereof will typically be at least one atom removed from the backbone structure (i.e. there will be at least one atom between the carbon based backbone structure of the polymer chain and the pendant cationic functional group or a precursor functional group thereof).
- the covalently bound moiety may (i) present pendant from the backbone structure, and (ii) comprise a cationic functional group or a precursor functional group thereof that is at least one atom (or at least two or three atoms) removed from the backbone structure.
- Polymer used in accordance with the invention may be simplistically illustrated as comprising structure (A), where " * wv> " represents the remainder of the polymer backbone, C-C represents the carbon-carbon segment derived from the first polymerised residue of ethylenically unsaturated monomer, and " " represents the covalent attachment of atoms to the carbon-carbon (C-C) segment of the moiety (CAT) in pendant formation.
- the moiety (CAT) will typically be at least one atom removed from the backbone structure.
- the polymer will generally incorporate with its backbone structure a plurality of first polymerised monomer residues.
- polymer in accordance with the invention may comprise a second polymerised residue of ethylenically unsaturated monomer.
- the second polymerised monomer residue comprises a covalently bound hydrophobic moiety that presents pendant from the polymer backbone structure.
- the hydrophobic moiety will typically also be at least one atom removed from the backbone structure.
- polymer used in accordance with the invention comprises both first and second polymerised residues of ethylenically unsaturated monomer
- the polymer may be simplistically illustrated by structure (B), where in addition to features of structure (A) outlined above structure (B) further comprises a carbon-carbon segment (C-C) derived from the second polymerised residue of ethylenically unsaturated monomer to which is covalently attached the hydrophobic moiety (BIC) in pendant formation.
- the polymer (B) will generally incorporate within its backbone structure a plurality of both first and second polymerised monomer residues and as such it will be a copolymer, for example a random copolymer.
- Polymer used in accordance with the invention therefore presents pendant from its backbone structure (i) a covalently bound moiety which comprises a cationic functional group or a precursor functional group thereof (CAT), and optionally (ii) a covalently bound hydrophobic moiety (BIC).
- a covalently bound moiety which comprises a cationic functional group or a precursor functional group thereof (CAT), and optionally (ii) a covalently bound hydrophobic moiety (BIC).
- cationic functional group bares a positive charge.
- a skilled person will also appreciate the range of functional groups that can present as a cation.
- cationic functional groups will generally comprise a nitrogen and/or phosphorous atom.
- a "precursor functional group thereof is therefore a functional group that typically presents in a neutral state and can be converted into a cation, for example through addition or removal of an electrophile.
- a “precursor functional group” is therefore typically neutral but chargeable to form a cation through, for example, pH dependant protonation (for example at physicological pH), or quaternisation, to afford the corresponding cationic functional group.
- the cationic functional group or precursor functional group thereof is selected from amine, phosphine and onium (e.g. ammonium and phosphonium) functional groups.
- the cationic functional group or precursor functional group thereof is selected from primary amine, secondary amine, tertiary amine, ammonium (i.e. quaternary amine) and phosphonium (i.e. quaternary phosphine) functional groups.
- the cationic functional group or precursor functional group thereof is selected from guanidine and amidino.
- the pendant and covalently bound hydrophobic moiety may be provided by suitable hydrophobic moieties known to those skilled in the art.
- the hydrophobic moiety may be selected from alkyl, alkenyl, alkynyl, aryl, carbocyclyl, heterocyclyl, heteroaryl, alkylalkenyl, alkylalkynyl, alkylaryl, alkylcarbocyclyl, alkylheterocyclyl, alkylheteroaryl, alkylalkenylalkyl, alkylalkynylalkyl, alkylarylalkyl, alkylacylalkyl, arylalkylaryl, arylalkenylaryl, arylalkynylaryl, arylcarbocyclyl, arylheterocyclyl and arylheteroaryl.
- the covalently bound hydrophobic moiety is selected from C 1-18 alkyl and C 6 - 18 aryl.
- PA and P B which are the same or different, represent the remainder of the polymer backbone structure
- X is selected from H and optionally substituted Ci-C 6 alkyl
- A is a moiety capable of activating an ethylenically unsaturated double bond such that it will undergo free radical polymerisation
- Sp is a spacer moiety
- n 0 or 1 ;
- CAT is the moiety comprising a cationic functional group or precursor functional group thereof.
- the polymer used in accordance with the invention may be described such that the second polymerised residue of ethylenically unsaturated monomer has a structure represented in general formula (II):
- PA and P B which are the same or different, represent the remainder of the polymer backbone structure
- X is selected from H and optionally substituted Ci-C 6 alkyl
- A is a moiety capable of activating an ethylenically unsaturated double bond such that it will undergo free radical polymerisation
- Sp is a spacer moiety
- n 0 or 1 ;
- BIC is the hydrophobic moiety.
- PA and P B are presented in general formula (I) to: (a) more clearly depict the polymer backbone structure, and (b) help illustrate the pendant formation of the covalently bound (CAT).
- the first polymerised residue of ethylenically unsaturated monomer represented by general formula (I) illustrates how the moiety (CAT) is at least one atom removed from the polymer backbone structure (i.e. CAT is separated from the backbone structure by at least A).
- polymer used in accordance with the invention will comprise multiple of such polymerised residues.
- each polymerised residue may be the same or different.
- the polymerised residue of ethylenically unsaturated monomer per se is not pendant from the polymer backbone structure.
- the moiety comprising the cationic functional group or precursor functional group thereof will be pendant from the polymer backbone (as will be the hydrophobic moiety).
- the first polymerised residue of ethylenically unsaturated monomer (-C-C-) in formula (I) is not pendant from the polymer backbone.
- the -A-[Sp] n -CAT component of formula (I) is pendant from the polymer backbone structure.
- the moiety (CAT) is also at least one atom removed from the backbone structure.
- X is selected from H and optionally substituted Ci-C 6 alkyl. In one embodiment, X is selected from H and CH 3 .
- the divalent group "-A-" in the general formulae described herein is a moiety capable of activating an ethylenically unsaturated double bond such that it will undergo free radical polymerisation.
- the polymerised residue of the ethylenically unsaturated moiety is the polymerised residue of a monomer of general formula (III), and as such there no longer remains in formulae (I) and (II) the ethylenically unsaturated double bond that requires activation to undergo polymerisation.
- ethylenically unsaturated double bonds typically require activation so that they are sufficiently reactive to take part in free radical polymerisation. Such activation is generally achieved by covalently coupling an activating group to the double bond within suitable proximity to promote sufficient activation.
- A will be selected from an aromatic- or a heteroatom containing- moiety.
- A may be selected from a carbonyl or carbonyl containing functional group such as an ester, an anhydride, an amide or an imide, an ether functional group, or an aromatic functional group such as a phenylene group.
- A is a divalent moiety selected from carbonyl, ether, ester, amide, anhydride, imide and optionally substituted arylene.
- A may form together with CAT a moiety capable of activating an ethylenically unsaturated double bond such that it will undergo free radical polymerisation.
- A may be a carbonyl moiety and CAT may comprise a -(R Z )N- group (where R z is H or Ci-C 6 alkyl) such that -A-CAT form together an amide functional group.
- the divalent group "-[Sp] n -" in the general formulae defined herein is a spacer moiety.
- n 0 it is intended that the spacer moiety Sp is absent from the formulae, and as such the moiety A is directly coupled to moiety CAT, BIC or M.
- n 1 it is intended that the spacer moiety is present in the general formulae, and as such the spacer moiety bridges moieties A and CAT, BIC or M.
- the spacer moiety Sp may function to increase the distance of CAT, BIC or M from the backbone polymer structure.
- spacer moiety Sp there is no particular limitation regarding the nature of the spacer moiety Sp.
- suitable spacer moieties Sp include an optionally substituted divalent form of a group selected from alkyl, alkenyl, alkynyl, aryl, acyl, carbocyclyl, heterocyclyl, heteroaryl, alkylalkenyl, alkylalkynyl, alkylaryl, alkylacyl, alkylcarbocyclyl, alkylheterocyclyl, alkylheteroaryl, alkyloxyalkyl, alkenyloxyalkyl, alkynyloxyalkyl, aryloxyalkyl, alkyloxyacylalkyl, alkylthioalkyl, alkenylthioalkyl, alkynylthioalkyl, arylthioalkyl, alkylalkenylalkyl, alkylalkynylalkyl, alkylarylalkyl
- each alkyl, alkenyl, alkynyl, aryl, carbocyclyl, heteroaryl, and heterocyclyl moiety may be optionally substituted.
- each of such moieties may be optionally substituted with one, two, three or more optional substituents as herein defined.
- polyoxyalkylene used herein is intended to mean an oligomer or polymer built up from oxyalkylene units.
- the polyoxyalkylene may be branched or linear.
- a polyoxyalkylene used in accordance with the invention will generally comprise 2 to about 50, or from 2 to about 25 oxyalkylene units, or from 2 to about 15 oxyalkylene units.
- the term "oxyalkylene" used herein is intended to mean a ⁇ ⁇
- R and R are each independently selected from hydrogen and optionally substituted alkyl, and i is an integer ranging from 1 to 10.
- R and R are each independently selected from hydrogen and optionally substituted C 1-6 alkyl, and i
- each (CR R ) may be the same or
- R and R of the first "i” are both hydrogen and R and R of the second “i” can respectively be hydrogen and methyl (i.e. -OCH 2 CH(CH 3 )-).
- Each oxyalkylene group or unit within the polyoxyalkylene may be the same or different.
- the polyoxyalkylene may be a homopolymer or a copolymer (including a random or block copolymer).
- the oxyalkylene units may be derived from an alkylene oxide such as ethylene oxide, propylene oxide, or butylene oxide.
- a suitable spacer moiety Sp include optionally substituted: CM S alkyl, C 6 - 1 8 aryl, CM S alkyl -C(O)-, C 6 _i 8 aryl -C(O)-, and -(-0(CR x R Y )i-) r -, where R x , R Y , i are as herein defined and r is an integer ranging from 2-15.
- BIC may be alkyl such that -Sp-BIC form together the hydrophobic moiety.
- -CAT comprises a cationic functional group of precursor functional group thereof.
- -CAT comprises one or more atoms selected from nitrogen, phosphorous and combination thereof.
- -CAT comprises a functional group selected from amine, phosphine, onium and combination thereof. In another embodiment, -CAT comprises a functional group selected from primary amine, secondary amine, tertiary amine, ammonium, phosphonium and combinations thereof.
- -CAT is selected from guanidine and amidino.
- the pendant -BIC group may be provided by any suitable hydrophobic moiety known to those skilled in the art.
- -BIC may be selected from alkyl, alkenyl, alkynyl, aryl, carbocyclyl, heterocyclyl, heteroaryl, alkylalkenyl, alkylalkynyl, alkylaryl, alkylcarbocyclyl, alkylheterocyclyl, alkylheteroaryl, alkylalkenylalkyl, alkylalkynylalkyl, alkylarylalkyl, alkylacylalkyl, arylalkylaryl, arylalkenylaryl, arylalkynylaryl, arylcarbocyclyl, arylheterocyclyl and arylheteroaryl.
- -BIC is selected from C 1-18 alkyl and C 6 - 18 aryl.
- Polymer used in accordance with the invention may be a homopolymer or a copolymer. In the case of a homopolymer, those skilled in the art will appreciate that only one type of ethylenically unsaturated monomer will be used to prepare the polymer.
- Ethylenically unsaturated monomer used to prepare the polymer used in accordance with the invention includes and may be represented by general formula (III):
- X is selected from H and optionally substituted Ci-C 6 alkyl
- A is a moiety capable of activating an ethylenically unsaturated double bond such that it will undergo free radical polymerisation
- Sp is a spacer moiety
- n 0 or 1 ;
- M is CAT or BIC as herein defined. In one embodiment, M in formula (III) is CAT. In another embodiment, M in formula (III) is BIC.
- M in formula (III) is CAT
- the ethylenically unsaturated monomer will provide for the first polymerised residue represented in formula (I) .
- M in formula (III) is BIC
- the ethylenically unsaturated monomer will provide for the second polymerised residue represented in general formula (II).
- Polymer used in accordance with the invention will generally comprise multiple first polymerised residues represented in general formula (I). When present, the polymer will also generally comprise multiple second polymerised residues represented in general formula (II). In the context of general formulae (I) and (II), such multiple polymerised residues of the first and second ethylenically unsaturated monomers will typically form part or all of the polymer backbone structure represented by PA and P B . Polymerised residues of ethylenically unsaturated monomer that form part of the polymer backbone structure of polymer used in accordance with the invention are typically formed through a free radical polymerisation process.
- polymer used in accordance with the invention that is in the form of a homopolymer may be prepared by polymerising monomer of the same structure from formula (III) where M is CAT.
- Polymer used in accordance with the invention in the form of a copolymer may be prepared by polymerising monomers of different structure from formula (III) where M is CAT, or by polymerising monomer of formula (III) where M is CAT with one or more other suitable copolymerisable ethylenically unsaturated monomers.
- suitable copolymerisable ethylenically unsaturated monomers will include those of general formula (III) when M is BIC and also other ethylenically unsaturated monomers of general formula (IV):
- U and W are independently selected from -C0 2 H, -CO 2 R 1 , -COR 1 , -CSR 1 ,
- Ci-C 4 alkyl or U and W form together a lactone, anhydride or imide ring that may itself be optionally substituted, where the optional substituents are independently selected from hydroxy, -C0 2 H, -COR 1 , -CSR 1 , -CSOR 1 , -COSR 1 , -CN, -CONH 2 , -CONHR 1 , -SCOR 1 , and
- V is selected from hydrogen, R 1 , -C0 2 H, -COR 1 , -CSR 1 , -CSOR 1 , -COSR 1 , -CONH 2 , -CONHR 1 , -SCOR 1 , and -OCSR 1 ; where the or each R is independently selected from optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted aryl, optionally substituted heteroaryl, optionally substituted carbocyclyl, optionally substituted heterocyclyl, optionally substituted arylalkyl, optionally substituted heteroarylalkyl, optionally substituted alkylaryl, optionally substituted alkylheteroaryl, and an optionally substituted polymer chain.
- the or each R 1 in formula (IV) may also be independently selected from optionally substituted C 1 -C 22 alkyl, optionally substituted C 2 -C 22 alkenyl, optionally substituted C 2 -C 22 alkynyl, optionally substituted C 6 -Ci 8 aryl, optionally substituted C 3 -C 18 heteroaryl, optionally substituted C 3 -C 18 carbocyclyl, optionally substituted C 2 -C 18 heterocyclyl, optionally substituted C 7 -C 24 arylalkyl, optionally substituted C 4 -Cis heteroarylalkyl, optionally substituted C 7 -C 24 alkylaryl, optionally substituted C 4 -Ci 8 alkylheteroaryl, and an optionally substituted polymer chain.
- R 1 in formula (IV) may be independently selected from optionally substituted Ci-C 6 alkyl.
- optional substituents for R 1 in formula (IV) include those selected from alkyleneoxidyl (epoxy), hydroxy, alkoxy, acyl, acyloxy, formyl, alkylcarbonyl, carboxy, sulfonic acid, alkoxy- or aryloxy-carbonyl, isocyanato, cyano, silyl, halo, amino, including salts and derivatives thereof.
- polymer chains include those selected from polyalkylene oxide, polyarylene ether and polyalkylene ether.
- Examples of monomers of formula (IV) include maleic anhydride, N-alkylmaleimide, N- arylmaleimide, dialkyl fumarate and cyclopolymerisable monomers, acrylate and methacrylate esters, acrylic and methacrylic acid, styrene, acrylamide, methacrylamide, and methacrylonitrile, mixtures of these monomers, and mixtures of these monomers with other monomers.
- monomers of formula (IV) include: methyl methacrylate, ethyl methacrylate, propyl methacrylate (all isomers), butyl methacrylate (all isomers), 2-ethylhexyl methacrylate, isobornyl methacrylate, methacrylic acid, benzyl methacrylate, phenyl methacrylate, methacrylonitrile, alpha-methylstyrene, methyl acrylate, ethyl acrylate, propyl acrylate (all isomers), butyl acrylate (all isomers), 2-ethylhexyl acrylate, isobornyl acrylate, acrylic acid, benzyl acrylate, phenyl acrylate, acrylonitrile, styrene, functional methacrylates, acrylates and styrenes selected from glycidyl methacrylate, 2-hydroxyethyl methacrylate, hydroxy
- PA and P B each represent a polymer chain which may be the same or different, where each can independently comprise the first and/or second polymerised monomer residues, one or more other polymerised monomer residues, and combination thereof.
- PA and P B can each represent a polymer chain which may be the same or different, where each can independently comprise polymerised residue of ethylenically unsaturated monomer selected from general formula (III), general formula (IV) and combinations thereof.
- the first polymerised residue of ethylenically unsaturated monomer has a structure represented in general formula (I) herein described where A is an ester, Sp is Ci_ 6 alkyl and CAT is selected from guanidino and amidino.
- polymer used in accordance with the invention further incorporates within its backbone structure a second polymerised residue of ethylenically unsaturated monomer, wherein the second polymerised residue has a structure represented in general formula (II) defined herein, where A is an ester, n is 0 and BIC is Ci_ 6 alkyl.
- the first polymerised residue of ethylenically unsaturated monomer has a structure represented in general formula (V):
- the second polymerised residue of ethylenically unsaturated has a structured represented in general formula (VI):
- the number average molecular weight (Mn) of the polymer will generally range from about 2,000 to about 250,000, for example from about 3,000 to about 100,000.
- the Mn of the polymer is determined using gel permeation chromatography (GPC).
- polymer used according to the invention has a dispersity (D) of less than 1.5, or less than 1.4, or less than 1.3, or less than 1.2.
- Polymer used in accordance with the invention may be prepared by a method comprising polymerising by free radical polymerisation ethylenically unsaturated monomer having a structure represented by general formula (III), optionally in combination with ethylenically unsaturated monomer of general formula (IV). Where ethylenically unsaturated monomer of general formula (IV) is used, it will of course have a structure not falling within the scope of monomers of general formula (III). According to the present invention the polymer must be prepared by polymerising at least monomer of general formula (III) where M is CAT. In other words, the so formed polymer must incorporate within its backbone structure the first polymerised residue of ethylenically unsaturated monomer.
- the first polymerised monomer residue is a 2-guanidinoethyl methacrylate residue.
- the second polymerised monomer residue is a methyl methacrylate residue.
- polymer used in accordance with the invention is a copolymer of 2-guanidinoethyl methacrylate and methyl methacrylate.
- Polymer used in accordance with the invention may incorporate within its backbone structure from about 1 mol% to 100 mol% of the first polymerised residue (or general formula (I)), relative to the total amount of polymerised residue of ethylenically unsaturated monomer present.
- the amount of the first polymerised residue ranges from about 10 mol% to about 90 mol%, or from about 20 mol% to about 80 mol%, or from about 30 mol% to about 70 mol%, or from about 40 mol% to about 70 mol%, or from about 50 mol% to about 70 mol%, relative to the total amount of polymerised residue of ethylenically unsaturated monomer present.
- the second polymerised residue of ethylenically unsaturated monomer (or general formula (II)), will generally be incorporated within the polymer backbone structure in an amount ranging from about 10 mol% to about 90 mol%, or from about 20 mol% to about 80 mol%, or from about 30 mol% to about 70 mol%, or from about 40 mol% to about 70 mol%, or from about 50 mol% to about 70 mol%, relative to the total amount of polymerised residue of ethylenically unsaturated monomer present.
- polymerised residue derived from ethylenically unsaturated monomer of general formula (IV) will generally be incorporated within the polymer backbone structure in an amount ranging from about 5 mol% to about 60 mol%, or from about 5 mol% to about 50 mol%, or from about 5 mol% to about 40 mol%, or from about 5 mol% to about 30 mol%, relative to the total amount of polymerised residue of ethylenically unsaturated monomer present.
- Polymerisation of ethylenically unsaturated monomer by free radical polymerisation to prepare polymer used in accordance with the invention may require initiation from a source of free radicals.
- a source of initiating radicals can be provided by any suitable means of generating free radicals, such as the thermally induced homolytic scission of suitable compound(s) (thermal initiators such as peroxides, peroxyesters, or azo compounds), the spontaneous generation from monomers (e.g. styrene), redox initiating systems, photochemical initiating systems or high energy radiation such as electron beam, X- or gamma-radiation.
- Free radical polymerisation of monomer to form polymer used in accordance with the invention may proceed by conventional free radical polymerisation or by so-called living free radical polymerisation.
- Living polymerisation is generally considered in the art to be a form of chain polymerisation in which irreversible chain termination is substantially absent.
- An important feature of living polymerisation is that polymer chains will continue to grow while monomer and the reaction conditions to support polymerisation are provided. Where free radical polymerisation of the monomers occurs by a living polymerisation technique, it will generally be necessary to use a so-called living polymerisation agent.
- living polymerisation agent is meant a compound that can participate in and control or mediate the living polymerisation of the ethylenically unsaturated monomers so as to form a living polymer chain (i.e. a polymer chain that has been formed according to a living polymerisation technique).
- free radical living polymerisation techniques include iniferter polymerisation, stable free radical mediated polymerisation (SFRP), atom transfer radical polymerisation (ATRP), and reversible addition fragmentation chain transfer (RAFT) polymerisation.
- SFRP stable free radical mediated polymerisation
- ATRP atom transfer radical polymerisation
- RAFT reversible addition fragmentation chain transfer
- polymer used in accordance with the invention is prepared by iniferter polymerisation.
- polymer used in accordance with the invention is prepared by SFRP.
- polymer used in accordance with the invention is prepared by ATRP.
- polymer used in accordance with the invention is prepared by RAFT polymerisation.
- compositions in liquid form may comprise up to 1000 mg/L of polymer.
- the compositions in liquid form comprise about 10 mg/L to about 500 mg/L of polymer, or from about 50 mg/L to about 300 mg/L of polymer.
- Polymer used in accordance with the invention has surprisingly and advantageously been found to function as a potent anti-microbial agent that adversely affects biofilms.
- the polymer may therefore also be described as being an anti-biofilm agent.
- the polymer, or composition comprising the polymer, used in accordance with the invention adversely affects the biofilm by inhibiting or preventing the biofilms growth, and/or by reducing the number of live microorganisms that form part of the biofilm.
- the biofilm may also be adversely affected by killing microorganisms that form part of the biofilm.
- the invention provides a method of adversely affecting a biofilm, which includes inhibiting or preventing the growth of the biofilm, reducing the number of live microorganisms that form of the biofilm, and/or killing microorganisms that form part of the biofilm.
- At least 10%, or at least 20%, or at least 30%, or at least 40 %, or at least 50 %, or at least 60%, or at least 70%, or at least 80 %, or at least 90 % of microorganisms that form part of the biofilm are killed.
- the method according to the invention is particularly suitable for adversely affecting a biofilm located on or in a subject.
- the invention also provides compositions suitable for administration to a subject, and also use of the polymer in the manufacture of a medicament for adversely affecting a biofilm.
- the biofilm is adversely affected by being exposed to the polymer or composition comprising the polymer described herein.
- Exposing the biofilm to the composition or polymer may be achieved by any suitable means known to those skilled in the art including coating, impregnating, spraying or otherwise contacting the biofilm, or a surface onto which the biofilm is adhered, with the polymer or polymer composition. Such exposure may occur as a result of administration of the composition or polymer to a subject comprising the biofilm.
- biofilm there is no particular limitation on the nature or location of a biofilm that can be adversely affected in accordance with the invention.
- the biofilm may be located in or on a subject.
- the biofilm may also be located on a surface of an inanimate object such as a medical device.
- compositions in accordance with the invention may be applied to a bodily surface of the subject. That surface may be internal or external to the subject.
- the biofilm may have been established on a human tissue surface (i.e. a biotic surface) such as a cornea or vitreous humor.
- Administration of the composition to the subject will of course be intended to bring about exposure of a biofilm in or on the subject to the polymer used in accordance with the invention. Administration may be achieved by any route considered suitable by those skilled in the art. Examples of routes of administration include those herein defined.
- Administration of the composition to a subject may be performed once or more than once, including 2, 3, 4, 5 or more times, or as many times as required to achieve the desired outcome, and at any appropriate interval.
- the biofilm may comprise, or consist essentially of, one or more microorganisms selected from Gram-positive bacteria such as Staphylococcus aureus, Staphylococcus epidermidis, Coagulase-negative Staphylococcus, Streptococcus sp., and Mycobacterium tuberculosis, Gram-negative bacteria such as Klebsiella pneumoniae and Pseudomonas aeruginosa, and fungal pathogens such as Candida sp., and Candida albicans.
- Gram-positive bacteria such as Staphylococcus aureus, Staphylococcus epidermidis, Coagulase-negative Staphylococcus, Streptococcus sp., and Mycobacterium tuberculosis
- Gram-negative bacteria such as Klebsiella pneumoniae and Pseudomonas aeruginosa
- fungal pathogens such as Candida sp., and Candida albicans.
- the biofilm may comprise, or consist essentially of, one or more Gram- positive bacteria such as Staphylococcus aureus, Staphylococcus epidermidis, Coagulase- negative Staphylococcus, Streptococcus sp., and mycobacterium tuberculosis,
- the biofilm may comprise, or consist essentially of, one or both microorganisms selected from Candida albicans and Staphylococcus aureus.
- the biofilm may be a monomicrobial or polymicrobial biofilm. The method according to the invention has surprisingly been found to be particularly effective at adversely affecting polymicrobial biofilms.
- polymicrobial biofilms the mixed microbial species are present in a symbiotic relationship, sometimes benefiting each other.
- beneficial interactions have been observed between S. aureus and C. albicans, such as higher microorganism load and increased antimicrobial resistance of the polymicrobial growth mode relative to single species biofilms.
- S. aureus becomes more resistant to vancomycin and daptomycin than as a monoculture.
- Staphylococcus epidermidis has been shown to protect C. albicans from the action of the antifungal drugs fluconazole and amphotericin B when growing together in polymicrobial biofilms.
- the enhanced drug resistance in polymicrobial biofilms has been attributed to components of the extracellular biofilm matrix secreted by fungi and bacteria.
- polymer described and exemplified herein advantageously exhibits potent antimicrobial properties against both monomicrobial and against polymicrobial biofilms.
- the efficacy of these polymers against biofilms was only modestly decreased compared to planktonic growth, thereby suggesting that conventional biofilm-resistance mechanisms do not apply.
- the antimicrobial properties exhibited by the polymer can be derived using the polymer as the sole antimicrobial agent.
- the potent antimicrobial properties of the polymer is at least part derived from the polymer's molecular structure mimicking that of naturally occurring antimicrobial peptides (AMPs).
- AMPs have been identified as promising leads in the development of novel antibiotics due to their broad spectrum antimicrobial activity, low toxicity towards human cells and a low susceptibility to current known mechanisms of resistance.
- their practical application is somewhat limited as the required proteins are typically pharmacokinetically unstable and large scale production is expensive.
- Polymer used in accordance with the invention advantageously presents a number of the desired properties of AMPs, but unlike AMPs they are stable, cheaper to produce and can be more readily chemically modified for tailored applications.
- Polymer used in accordance with the invention has advantageously demonstrated low human cell toxicity.
- microbial related infections associated with the presence of an established biofilm in or on a subject include infectious associated with the use of medical devices including, but not limited to venous and urinary catheters, heart valves and stents, prosthetic devices, tubings, implants (e.g. breast implants and intraocular lens), but also denture stomatitis, biofilm-related keratitis and infectious endophthalmitis.
- polymer described and exemplified herein may be used as the sole antimicrobial agent for adversely affecting the biofilm, where desired the polymer may be used in combination with one or more other antimicrobial agents to adversely affect the biofilm.
- the present invention further comprises exposing the biofilm to a composition comprising an effective amount of the polymer and one or more other antimicrobial agents.
- the exposure can be at the same time or at different times (i.e. the exposure can be simultaneous or sequential).
- those agents can be co- formulated with the composition comprising the polymer or formulated in a separate composition.
- those agents can be administered to a subject or exposed to the biofilm in the same or different routes or means as described herein.
- antifungal drugs such as azoles, echinocandins, polyenes, fluocytosine
- antibiotics such as penicillin (penicillin G), penicillinase-resistant ⁇ -lactam (oxacillin and methicillin), fluoroquinolones (ciprofloxacin), rifamycin (rifampicin), glycopeptide(vancomycin), and lipopeptide (daptomycin).
- compositions comprising the polymer used in accordance with the invention will of course depend on the application and/or administration technique employed.
- a composition may be formulated in the form of a liquid, nasal spray, eyedrops, syrup, suspension, cream, powder, tablet, capsule, paste, lotion or gel.
- compositions comprising the polymer may further comprise one or more carriers, diluents or excipients.
- such carriers, diluents or excipients are pharmacologically acceptable.
- suitable carriers, diluents or excipients include saline solution, demineralized or distilled water, mineral oil such as liquid paraffin, soft paraffin or squalane, vegetable based oil such as maze oil, olive oil, sesame oil, cotton seed oil, peanut oil, safflower oil or coconut oil, silicone oils such as polysiloxanes, alcohols such as ethanol or isopropanol, polymers such as polyols such as polyethylene glycol, polypropylene glycol, natural polymers such as alginate, starch and dextran glucan, gelatin or glycerine, fatty acid esters such as isopropyl palmitate, or ethyl oleate, agar, gum acacia, petroleum jelly, cellulose and alkyl cellulose derivatives, and solid substrates such as those made from metal, plastic, ceramic or combinations thereof.
- the amount of polymer used in the methods or compositions in accordance with the invention will be an effective amount to achieve a desired result, which in the case of the present invention is to adversely affect a biofilm.
- the exact amount required to achieve the desired results will of course vary depending on factors such as a subject or a situation under consideration, the composition of the biofilm, the volume or size of the biofilm to be exposed to the composition, the environment in which the biofilm is located and the means by which exposing the biofilm to the composition is conducted.
- the polymer may be provided at a concentration ranging from about 0.01% (w/w) to about 60% (w/w), or from about 0.01% (w/w) to about 40% (w/w), or from about 0.5% (w/w) to about 20% (w/w), or from about 1% (w/w) to about 15% (w/w), or from about 1% (w/w) to about 10% (w/w).
- the polymer may be provided in an amount ranging up to 1000 mg/mL.
- compositions used in accordance with the invention are formulated for administration to a subject, such as to treat an infectious disease or condition associated with a biofilm
- the composition will typically be administered to the subject in a therapeutically affective amount.
- Suitable dosage amounts and dosing regimes to achieve this can be determined by those skilled in the art and may depend on the particular condition being treated or diagnosed, the severity of the condition as well as the general age, health and weight of the subject. Particular dosages can be empirically determined or extrapolated from, for example, studies in animals, or previous studies in humans.
- a suitable dosage of the polymer per se may lie within the range of about 0.1 ng per kg of body weight to 1 g per kg of body weight per dosage.
- the dosage may be in the range of 1 ⁇ g to 1 g per kg of body weight per dosage, such as is in the range of 1 mg to 1 g per kg of body weight per dosage. In one embodiment, the dosage may be in the range of 1 mg to 500 mg per kg of body weight per dosage. In another embodiment, the dosage may be in the range of 1 mg to 250 mg per kg of body weight per dosage. In yet another embodiment, the dosage may be in the range of 1 mg to 100 mg per kg of body weight per dosage, such as up to 50 mg per body weight per dosage.
- compositions in accordance with the invention may be administered in a single dose or a series of doses.
- compositions comprising polymer in accordance with the invention have been shown to function as effective antimicrobial lock solutions. Salvage of infected catheters and other implanted devices is important in clinical situations where removal of the device is not the preferred option. This can be achieved by so-called "antimicrobial lock therapy” (ALT), which entails treatment of the device with an antimicrobial agent to kill microorganisms that form the biofilm adhered to the device.
- ALT antimicrobial lock therapy
- Ethanol ALT has been recommended as a first line option in device related bloodstream infections. However this is only recommended when the infection is caused by microorganisms with relatively low virulence such as coagulase-negative staphylococci (CoNS), or other microorganisms when device retention is warranted.
- CoNS coagulase-negative staphylococci
- the Infectious Diseases Society of America clinical guidelines recommend removal of the infected devices such as central venous catheters (CVC) in the case of S. aureus or C. albicans biofilm-related infections. Often the need for device salvage outweighs the risk, as device reinsertion might be difficult in patients with limited venous access and there is a high risk of morbidity and mortality associated with device replacement.
- CVC central venous catheters
- compositions comprising polymer according to the invention may advantageously overcome one or more problems associated with using conventional lock solution.
- the present invention further provides a method of performing antimicrobial lock therapy on a medical device having a biofilm adhered thereto, the method comprising exposing the biofilm to a composition comprising an effective amount of polymer that incorporates within its backbone structure a first polymerised residue of ethylenically unsaturated monomer, said first polymerised monomer residue comprising a covalently bound moiety that (i) presents pendant from the backbone structure, and (ii) comprises a cationic functional group or precursor functional group thereof.
- the present invention further provides an antimicrobial lock solution for use in antimicrobial lock therapy, the composition comprising a pharmacologically acceptable carrier and polymer that incorporates within its backbone structure a first polymerised residue of ethylenically unsaturated monomer, said first polymerised monomer residue comprising a covalently bound moiety that (i) presents pendant from the backbone structure, and (ii) comprises a cationic functional group or precursor functional group thereof.
- the antimicrobial lock solution in accordance with the invention will typically be used for performing antimicrobial lock therapy on a medical device having a biofilm adhered thereto. Exposure of the biofilm to the antimicrobial lock solution advantageously adversely affects the biofilm as described herein.]
- alkyl used either alone or in compound words denotes straight chain, branched or cyclic alkyl, preferably C 1-2 o alkyl, e.g. CM O or C 1-6 .
- straight chain and branched alkyl include methyl, ethyl, n-propyl, isopropyl, n-butyl, sec-butyl, i-butyl, ft-pentyl, 1,2-dimethylpropyl, 1,1-dimethyl-propyl, hexyl, 4-methylpentyl, 1-methylpentyl, 2- methylpentyl, 3-methylpentyl, 1,1-dimethylbutyl, 2,2-dimethylbutyl, 3,3-dimethylbutyl, 1,2- dimethylbutyl, 1,3-dimethylbutyl, 1,2,2-trimethylpropyl, 1,1,2-trimethylpropyl, heptyl, 5- methylhex
- cyclic alkyl examples include mono- or polycyclic alkyl groups such as cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, cycloheptyl, cyclooctyl, cyclononyl, cyclodecyl and the like. Where an alkyl group is referred to generally as "propyl", butyl” etc, it will be understood that this can refer to any of straight, branched and cyclic isomers where appropriate. An alkyl group may be optionally substituted by one or more optional substituents as herein defined.
- alkenyl denotes groups formed from straight chain, branched or cyclic hydrocarbon residues containing at least one carbon to carbon double bond including ethylenically mono-, di- or polyunsaturated alkyl or cycloalkyl groups as previously defined, preferably C2-20 alkenyl (e.g.
- alkenyl examples include vinyl, allyl, 1- methylvinyl, butenyl, iso-butenyl, 3-methyl-2-butenyl, 1-pentenyl, cyclopentenyl, 1 -methyl - cyclopentenyl, 1-hexenyl, 3-hexenyl, cyclohexenyl, 1-heptenyl, 3-heptenyl, 1-octenyl, cyclooctenyl, 1-nonenyl, 2-nonenyl, 3-nonenyl, 1-decenyl, 3-decenyl, 1,3-butadienyl, 1,4- pentadienyl, 1,3-cyclopentadienyl, 1,3-hexadienyl, 1,4-hexadienyl, 1,3-cyclohexadienyl, 1,4- cyclohexadienyl, 1,3-cyclohept
- alkynyl denotes groups formed from straight chain, branched or cyclic hydrocarbon residues containing at least one carbon-carbon triple bond including ethylenically mono-, di- or polyunsaturated alkyl or cycloalkyl groups as previously defined. Unless the number of carbon atoms is specified the term preferably refers to C2-20 alkynyl (e.g. C2-10 or C 2 -6)- Examples include ethynyl, 1-propynyl, 2-propynyl, and butynyl isomers, and pentynyl isomers. An alkynyl group may be optionally substituted by one or more optional substituents as herein defined.
- halogen denotes fluorine, chlorine, bromine or iodine (fluoro, chloro, bromo or iodo).
- aryl denotes any of single, polynuclear, conjugated and fused residues of aromatic hydrocarbon ring systems(e.g. C 6 - 24 or C 6 -i8)- ⁇
- aryl include phenyl, biphenyl, terphenyl, quaterphenyl, naphthyl, tetrahydronaphthyl, anthracenyl, dihydroanthracenyl, benzanthracenyl, dibenzanthracenyl, phenanthrenyl, fluorenyl, pyrenyl, idenyl, azulenyl, chrysenyl.
- aryl include phenyl and naphthyl.
- An aryl group may or may not be optionally substituted by one or more optional substituents as herein defined.
- arylene is intended to denote the divalent form of aryl.
- carbocyclyl includes any of non-aromatic monocyclic, polycyclic, fused or conjugated hydrocarbon residues, preferably C 3 _ 2 o (e.g. C 3 _io or C 3 _ 8 ).
- the rings may be saturated, e.g. cycloalkyl, or may possess one or more double bonds (cycloalkenyl) and/or one or more triple bonds (cycloalkynyl).
- Particularly preferred carbocyclyl moieties are 5-6- membered or 9-10 membered ring systems.
- Suitable examples include cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, cycloheptyl, cyclooctyl, cyclononyl, cyclodecyl, cyclopentenyl, cyclohexenyl, cyclooctenyl, cyclopentadienyl, cyclohexadienyl, cyclooctatetraenyl, indanyl, decalinyl and indenyl.
- a carbocyclyl group may be optionally substituted by one or more optional substituents as herein defined.
- the term "carbocyclylene" is intended to denote the divalent form of carbocyclyl.
- heteroatom refers to any atom other than a carbon atom which may be a member of a cyclic organic group.
- heteroatoms include nitrogen, oxygen, sulfur, phosphorous, boron, silicon, selenium and tellurium, more particularly nitrogen, oxygen and sulfur.
- heterocyclyl when used alone or in compound words includes any of monocyclic, polycyclic, fused or conjugated hydrocarbon residues, preferably C3-20 (e.g. C3-10 or C 3-8 ) wherein one or more carbon atoms are replaced by a heteroatom so as to provide a non- aromatic residue.
- Suitable heteroatoms include O, N, S, P and Se, particularly O, N and S. Where two or more carbon atoms are replaced, this may be by two or more of the same heteroatom or by different heteroatoms.
- the heterocyclyl group may be saturated or partially unsaturated, i.e. possess one or more double bonds. Particularly preferred heterocyclyl are 5-6 and 9-10 membered heterocyclyl.
- heterocyclyl groups may include azridinyl, oxiranyl, thiiranyl, azetidinyl, oxetanyl, thietanyl, 2H-pyrrolyl, pyrrolidinyl, pyrrolinyl, piperidyl, piperazinyl, morpholinyl, indolinyl, imidazolidinyl, imidazolinyl, pyrazolidinyl, thiomorpholinyl, dioxanyl, tetrahydrofuranyl, tetrahydropyranyl, tetrahydropyrrolyl, tetrahydrothiophenyl, pyrazolinyl, dioxalanyl, thiazolidinyl, isoxazolidinyl, dihydropyranyl, oxazinyl, thiazinyl, thiomorpholinyl, oxathianyl, dithi
- heteroaryl includes any of monocyclic, polycyclic, fused or conjugated hydrocarbon residues, wherein one or more carbon atoms are replaced by a heteroatom so as to provide an aromatic residue.
- Preferred heteroaryl have 3-20 ring atoms, e.g. 3-10.
- Particularly preferred heteroaryl are 5-6 and 9-10 membered bicyclic ring systems.
- Suitable heteroatoms include, O, N, S, P and Se, particularly O, N and S. Where two or more carbon atoms are replaced, this may be by two or more of the same heteroatom or by different heteroatoms.
- heteroaryl groups may include pyridyl, pyrrolyl, thienyl, imidazolyl, furanyl, benzothienyl, isobenzothienyl, benzofuranyl, isobenzofuranyl, indolyl, isoindolyl, pyrazolyl, pyrazinyl, pyrimidinyl, pyridazinyl, indolizinyl, quinolyl, isoquinolyl, phthalazinyl, 1,5-naphthyridinyl, quinozalinyl, quinazolinyl, quinolinyl, oxazolyl, thiazolyl, isothiazolyl, isoxazolyl, triazolyl, oxadialzolyl, oxatriazolyl, triazinyl, and furazanyl.
- a heteroaryl group may be optionally substituted by one or more optional substituents as
- Preferred acyl includes C(0)-R e , wherein R e is hydrogen or an alkyl, alkenyl, alkynyl, aryl, heteroaryl, carbocyclyl, or heterocyclyl residue.
- R e is hydrogen or an alkyl, alkenyl, alkynyl, aryl, heteroaryl, carbocyclyl, or heterocyclyl residue.
- Examples of acyl include formyl, straight chain or branched alkanoyl (e.g.
- Ci- 20 such as acetyl, propanoyl, butanoyl, 2-methylpropanoyl, pentanoyl, 2,2- dimethylpropanoyl, hexanoyl, heptanoyl, octanoyl, nonanoyl, decanoyl, undecanoyl, dodecanoyl, tridecanoyl, tetradecanoyl, pentadecanoyl, hexadecanoyl, heptadecanoyl, octadecanoyl, nonadecanoyl and icosanoyl; cycloalkylcarbonyl such as cyclopropylcarbonyl cyclobutylcarbonyl, cyclopentylcarbonyl and cyclohexylcarbonyl; aroyl such as benzoyl, toluoyl and naphthoyl; aralkanoyl
- phenylacetyl phenylpropanoyl, phenylbutanoyl, phenylisobutylyl, phenylpentanoyl and phenylhexanoyl
- naphthylalkanoyl e.g. naphthylacetyl, naphthylpropanoyl and naphthylbutanoyl]
- aralkenoyl such as phenylalkenoyl (e.g.
- phenylpropenoyl e.g., phenylbutenoyl, phenylmethacryloyl, phenylpentenoyl and phenylhexenoyl and naphthylalkenoyl (e.g.
- aryloxyalkanoyl such as phenoxyacetyl and phenoxypropionyl
- arylthiocarbamoyl such as phenylthiocarbamoyl
- arylglyoxyloyl such as phenylglyoxyloyl and naphthylglyoxyloyl
- arylsulfonyl such as phenylsulfonyl and napthylsulfonyl
- heterocycliccarbonyl heterocyclicalkanoyl such as thienylacetyl, thienylpropanoyl, thienylbutanoyl, thienylpentanoyl, thienylhexanoyl, thiazolylacetyl, thiadiazolylacetyl and tetrazolylacetyl
- sulfoxide refers to a group -S(0)R wherein R is selected from hydrogen, alkyl, alkenyl, alkynyl, aryl, heteroaryl, heterocyclyl, carbocyclyl, and aralkyl. Examples of preferred R include Ci_ 2 oalkyl, phenyl and benzyl.
- sulfonyl refers to a group S(0) 2 -R , wherein R is selected from hydrogen, alkyl, alkenyl, alkynyl, aryl, heteroaryl, heterocyclyl, carbocyclyl and aralkyl.
- R examples include Ci_ 2 oalkyl, phenyl and benzyl.
- Examples of preferred R include Ci_ 2 oalkyl, phenyl and benzyl. In one embodiment at least one R is hydrogen. In another embodiment, both R are hydrogen.
- amino is used here in its broadest sense as understood in the art and includes groups of the formula NR a R b wherein R a and R b may be any independently selected from hydrogen, alkyl, alkenyl, alkynyl, aryl, carbocyclyl, heteroaryl, heterocyclyl, arylalkyl, and acyl. R a and R b , together with the nitrogen to which they are attached, may also form a monocyclic, or polycyclic ring system e.g. a 3-10 membered ring, particularly, 5-6 and 9-10 membered systems. Examples of “amino” include NH 2 , NHalkyl (e.g.
- Ci_ 2 oalkyl NHaryl (e.g. NHphenyl), NHaralkyl (e.g. NHbenzyl), NHacyl (e.g. NHC(O)Ci_ 20 alkyl, NHC(O)phenyl), Nalkylalkyl (wherein each alkyl, for example Ci_ 2 o, may be the same or different) and 5 or 6 membered rings, optionally containing one or more same or different heteroatoms (e.g. O, N and S).
- NHaryl e.g. NHphenyl
- NHaralkyl e.g. NHbenzyl
- NHacyl e.g. NHC(O)Ci_ 20 alkyl, NHC(O)phenyl
- Nalkylalkyl wherein each alkyl, for example Ci_ 2 o, may be the same or different
- 5 or 6 membered rings optionally containing one or more same or different heteroatoms (e.g
- amido is used here in its broadest sense as understood in the art and includes groups having the formula C(0)NR a R b , wherein R a and R b are as defined as above.
- Examples of amido include C(0)NH 2 , C(0)NHalkyl (e.g. Ci_ 20 alkyl), C(0)NHaryl (e.g. C(O)NHphenyl), C(0)NHaralkyl (e.g. C(O)NHbenzyl), C(0)NHacyl (e.g.
- the term "carboxy ester” is used here in its broadest sense as understood in the art and includes groups having the formula C0 2 R g , wherein R g may be selected from groups including alkyl, alkenyl, alkynyl, aryl, carbocyclyl, heteroaryl, heterocyclyl, aralkyl, and acyl.
- carboxy ester examples include C0 2 Ci_ 2 o lkyl, C0 2 aryl (e.g.. C0 2 phenyl), C0 2 aralkyl (e.g. C0 2 benzyl).
- aryloxy refers to an "aryl” group attached through an oxygen bridge. Examples of aryloxy substituents include phenoxy, biphenyloxy, naphthyloxy and the like.
- acyloxy refers to an “acyl” group wherein the “acyl” group is in turn attached through an oxygen atom.
- acyloxy include hexylcarbonyloxy (heptanoyloxy), cyclopentylcarbonyloxy, benzoyloxy, 4-chlorobenzoyloxy, decylcarbonyloxy (undecanoyloxy), propylcarbonyloxy (butanoyloxy), octylcarbonyloxy (nonanoyloxy), biphenylcarbonyloxy (eg 4-phenylbenzoyloxy), naphthylcarbonyloxy (eg 1-naphthoyloxy) and the like.
- alkyloxycarbonyl refers to a "alkyloxy” group attached through a carbonyl group.
- alkyloxycarbonyl groups include butylformate, sec- butylformate, hexylformate, octylformate, decylformate, cyclopentylformate and the like.
- arylalkyl refers to groups formed from straight or branched chain alkanes substituted with an aromatic ring. Examples of arylalkyl include phenylmethyl (benzyl), phenylethyl and phenylpropyl.
- alkylaryl refers to groups formed from aryl groups substituted with a straight chain or branched alkane. Examples of alkylaryl include methylphenyl and isopropylphenyl.
- a group may or may not be substituted or fused (so as to form a condensed polycyclic group) with one, two, three or more of organic and inorganic groups, including those selected from: alkyl, alkenyl, alkynyl, carbocyclyl, aryl, heterocyclyl, heteroaryl, acyl, aralkyl, alkaryl, alkheterocyclyl, alkheteroaryl, alkcarbocyclyl, halo, haloalkyl, haloalkenyl, haloalkynyl, haloaryl, halocarbocyclyl, haloheterocyclyl, haloheteroaryl, haloacyl, haloaryalkyl, hydroxy, hydroxyalkyl, hydroxyalkenyl, hydroxyalkynyl, hydroxycarbocyclyl, hydroxyaryl, hydroxyaryl, hydroxy
- sulfoxideheterocyclyl sulfoxideheteroaryl, sulfoxideacyl, sulfoxidearalkyl, sulfonylalkyl, sulfonylalkenyl, sulfonylalkynyl, sulfonylcarbocyclyl, sulfonylaryl, sulfonylheterocyclyl, sulfonylheteroaryl, sulfonylacyl, sulfonylaralkyl, sulfonamidoalkyl, sulfonamidoalkenyl, sulfonamidoalkynyl, sulfonamidocarbocyclyl, sulfonamidoaryl, sulfonamidoheterocyclyl, sulfonamidoheteroaryl, sulfonamidoacyl, sul
- Optional substitution may also be taken to refer to where a -CH 2 - group in a chain or ring is replaced by a group selected from -0-, -S-, -NR a -, -C(O)- (i.e. carbonyl), -C(0)0- (i.e. ester), and -C(0)NR a - (i.e. amide), where R a is as defined herein.
- Preferred optional substituents include alkyl, (e.g. Ci_ 6 alkyl such as methyl, ethyl, propyl, butyl, cyclopropyl, cyclobutyl, cyclopentyl or cyclohexyl), hydroxyalkyl (e.g. hydroxymethyl, hydroxyethyl, hydroxypropyl), alkoxyalkyl (e.g. methoxymethyl, methoxyethyl, methoxypropyl, ethoxymethyl, ethoxyethyl, ethoxypropyl etc) alkoxy (e.g.
- alkyl e.g. Ci_ 6 alkyl such as methyl, ethyl, propyl, butyl, cyclopropyl, cyclobutyl, cyclopentyl or cyclohexyl
- hydroxyalkyl e.g. hydroxymethyl, hydroxyethyl, hydroxypropyl
- Ci_ 6 alkoxy such as methoxy, ethoxy, propoxy, butoxy, cyclopropoxy, cyclobutoxy), halo, trifluoromethyl, trichloromethyl, tribromomethyl, hydroxy, phenyl (which itself may be further substituted e.g., by Ci_ 6 alkyl, halo, hydroxy, hydroxyCi_ 6 alkyl, Ci_ 6 alkoxy, haloCi_ 6 alkyl, cyano, nitro OC(0)Ci_ 6 alkyl, and amino), benzyl (wherein benzyl itself may be further substituted e.g., by Ci- 6 alkyl, halo, hydroxy, hydroxyCi_ 6 alkyl, Ci_ 6 alkoxy, haloCi- 6 alkyl, cyano, nitro OC(0)Ci_ 6 alkyl, and amino), phenoxy (wherein phenyl itself may be further substituted e.g., by Ci_ 6
- Ci_ 6 alkyl such as methylamino, ethylamino, propylamino etc
- dialkylamino e.g. Ci_ 6 alkyl, such as dimethylamino, diethylamino, dipropylamino
- acylamino e.g.
- NHC(0)CH 3 NHC(0)CH 3
- phenylamino wherein phenyl itself may be further substituted e.g., by Ci_ 6 alkyl, halo, hydroxy, hydroxyCi- 6 alkyl, Ci_ 6 alkoxy, haloCi- 6 alkyl, cyano, nitro OC(0)Ci_ 6 alkyl, and amino
- nitro, formyl, -C(0)-alkyl e.g. Ci_ 6 alkyl, such as acetyl
- 0-C(0)-alkyl e.g.
- Ci_ 6 alkyl such as acetyloxy
- benzoyl wherein the phenyl group itself may be further substituted e.g., by C ⁇ alkyl, halo, hydroxy hydroxyC ⁇ alkyl, C ⁇ . alkoxy, haloCi- 6 alkyl, cyano, nitro OC(0)Ci_ 6 alkyl, and amino
- Ci_ 6 alkyl such as methyl ester, ethyl ester, propyl ester, butyl ester
- C0 2 phenyl wherein phenyl itself may be further substituted e.g., by Ci_ 6 alkyl, halo, hydroxy, hydroxyl Ci_ 6 alkyl, Ci_ 6 alkoxy, halo Ci_ 6 alkyl, cyano, nitro OC(0)Ci_ 6 alkyl, and amino
- CONH 2 CONHphenyl (wherein phenyl itself may be further substituted e.g., by Ci_ 6 alkyl, halo, hydroxy, hydroxyl Ci_ 6 alkyl, Ci_ 6 alkoxy, halo Ci_ 6 alkyl, cyano, nitro OC(0)Ci_ 6 alkyl, and amino)
- CONHbenzyl wherein benzyl itself may be further substituted e.g., by Ci_ 6 alkyl, halo, hydroxy hydroxyl C
- C 1-6 alkyl such as methyl ester, ethyl ester, propyl ester, butyl amide) CONHdialkyl (e.g. Ci_ 6 alkyl) aminoalkyl (e.g., HN Ci_ 6 alkyl-, Ci_ 6 alkylHN-Ci_ 6 alkyl- and (C 1-6 alkyl) 2 N-Ci_6 alkyl-), thioalkyl (e.g., HS Ci_ 6 alkyl-), carboxyalkyl (e.g., HO 2 CC 1 -6 alkyl-), carboxyesteralkyl (e.g., C 1-6 alkyl0 2 CCi_6 alkyl-), amidoalkyl (e.g., H 2 N(0)CCi_6 alkyl-, H(Ci_ 6 alkyl)N(0)CCi_ 6 alkyl-), formylalkyl (e.g., OHCCi_ 6 alkyl-), acy
- C. albicans DAY185 (ura3 A ::Ximm434/ura3- A ::Ximm434, ARG4:URA3:arg4::hisG/arg4::hisG hisl::hisG::pHISl/hisl::hisG) and S. aureus ATCC 25923 were used as model microorganisms for C. albicans-S. aureus polymicrobial biofilms. Both strains are well-known monomicrobial biofilm-producers.
- C. albicans bgl2 homozygous mutant strain was obtained from the cell wall mutant library constructed by the laboratory of Dr. Aaron Mitchell.
- the BGL2 gene encodes a 1 ,3-beta-glucosyltransferase (Bgl2p). Lack of Bgl2p in C. albicans leads to deficiency in 1,3-beta-glucan levels in the biofilm matrix.
- Strains were stored at -80°C in 15% (v/v) glycerol and streaked onto nutrient agar plates (NA, Oxoid, for S. aureus) or YPD plates (2% peptone, 1% yeast extract, 2% glucose, 80 mg/L uridine for C. albicans) as working stocks. The working stocks were stored at 4°C (S. aureus) or room temperature (C. albicans) and replaced every two weeks.
- Antimicrobial agents were stored at -80°C in 15% (v/v) glycerol and streaked onto nutrient agar plates (NA, Oxoid, for S. aureus) or YPD plates (2%
- anti- staphylococcal agents included oxacillin ( ⁇ -lactam), vancomycin (glycopeptide), ciprofloxacin (fluoroquinolone), rifampicin (rifamycin), and anti-candida agents included fluconazole (azole), amphotericin B (polyene), and caspofungin (echinocadin). All agents except caspofungin were purchased from Sigma-Aldrich, Sydney, Australia. Caspofungin was obtained from Merck & Co., Inc.
- Bacterial, fungal and polymicrobial biofilm cultures were set up in 96- well microplates for quantification purposes and on silicon disks for microscopy. Briefly, overnight bacterial and fungal cultures were grown in nutrient broth (NB) and YPD broth respectively and diluted into growth medium, RPMI- 1640, to a cell density of 1 xlO 6 CFU/mL. One hundred microlitres of the diluted bacterial and/or fungal suspensions were pipetted into each well in a 96-well flat- bottom tissue culture treated polystyrene (TCPS) microplate and incubated for 24 h at 37°C with gentle agitation (75 rpm).
- TCPS tissue culture treated polystyrene
- the suspensions were aspirated and the microwells were rinsed twice with 110 of PBS per well to remove non-adherent cells.
- the microplate containing biofilms was heat-fixed in a 60° C oven for 1 h and then stained with 1% (W/V) crystal violet (CV) for 10 min. The CV solution in the wells was then discarded and the microplates were washed four times to remove excessive stain. Two hundred microlitres of 95% ethanol plus 5% acetic acid were added into each well and the microplates were incubated at room temperature for 15 min. One hundred microlitres of the solutions from each well were transferred to a new microplate.
- the amount of biofilms formed was determined by reading the optical density with a Tecan Infinite M200 Plate Reader at 600 nm. Alternatively, after the microwells were rinsed with PBS to remove the non-adherent cells, 100 of PBS were added into each well and the biofilms were scrapped with sterile pipette tips. The microplate containing biofilms was then sonicated in a sonication bath (42 kHz) for 10 min. The bottom of the microwell was then scrapped again and the components in the microwell were transferred to an Eppendorf tube and vortexed for 30s at maximum speed, four times.
- suspensions were then serial diluted and plated on trypticase soy agar (TSA) + amphotericin B (2.5 mg/L) plates (to select for S. aureus) or YPD+ vancomycin (2 mg/L) plates (to select for C. albicans), to determine the cell numbers of each species in the biofilms.
- TSA trypticase soy agar
- amphotericin B 2.5 mg/L
- YPD+ vancomycin 2 mg/L
- biofilms were fixed with glutaraldehyde (2.5 %, v/v) and 1% osmium tetraoxide at room temperature, and dehydrated with gradually increased concentrations of ethanol and hexamethyldisilazane (HMDS). Samples were coated with gold in a Balzers SCD005 sputter coater and viewed under a Hitachi S570 scanning electron microscope.
- CLSM confocal laser scanning microscopy
- the biofilms were stained with BacLight Live/Dead Viability kit (L7007, Invitrogen) at 37 °C for 30 min in the dark after antimicrobial exposure.
- MICs Minimum inhibitory concentrations for antibacterial and antifungal agents were determined using the broth microdilution method according to CLSI guidelines M07-A9 (for S. aureus) and M27-A3 (for C. albicans), but replacing Muller-Hinton broth with RPMI- 1640 for antibacterial MIC testing.
- RPMI- 1640 One hundred microlitres of two-fold serial dilutions of the drugs prepared in RPMI- 1640 were added into the wells of 96-well microplates. Exponentially grown cultures were diluted in RPMI- 1640 to a density of -1x10 CFU/mL for C. albicans and -lxlO 6 CFU/mL for S. aureus and 100 ⁇ ⁇ were added to each well.
- Microplates were incubated for 18 h at 35 °C for S. aureus and 48 h for C. albicans. Bacterial or fungal growth was examined visually with the aid of a mirror reader. The antibacterial MIC was defined as the lowest concentration resulting in complete growth inhibition. The MIC of antifungals was read as the lowest concentration that prevents discernible growth for amphotericin B or polymers, or as the lowest concentration that inhibits at least 50% of fungal growth for fluconazole and caspofungin, corresponding to a score of zero or two in the CLSI M27-A3 protocol.
- Single biofilms of S. aureus or C. albicans were set up in 96-well microplates as described above. After overnight incubation, the cell suspensions were aspirated and the wells were rinsed twice with 100 ⁇ ⁇ of PBS per well to remove non-adherent cells. Two hundred microlitres of antimicrobial agents were added into each well, and the treatments lasted for 18 h for S. aureus and 48 h for C. albicans. After the treatment, the suspensions were removed and the microwells were washed twice with PBS.
- Antibiotics (mg/L)
- Antifungals (mg/L)
- Oxacillin 8 2 Vancomycin 8 2 4 Ciprofloxacin 8 2 4 Rifampicin 8 2 4
- Extracellular matrix was isolated from Candida or polymicrobial biofilms following the method reported in PLoS pathogens 2012, 8:el002848.
- Biofilms were established by growing cultures in 6-well TCPS microplates for 48 h at 37 °C. Supernatants were carefully removed from each well and the biofilms were washed once with sterile distilled water. One millilitre of distilled water was added into each well, and the biofilms were removed using a cell scraper. This step was repeated three times. The suspensions containing dislodged biofilms were then transferred into a 50 ml Falcon tube, sonicated with a Branson Sonicator for 10 min (duty cycle constant, output 20%).
- the suspensions were vortexed for 2 min at full speed (4 x 30 s), prior to centrifugation at 6000 rpm for 15 min for 5 times.
- the supernatants containing the extracellular matrix were removed and stored at -20 °C. Re-growth on TSA plates was examined to ensure the biofilm materials were free of viable cells.
- the isolated matrix material was incubated with polymer and growth medium for 2 h in 96- well plates, prior to the addition of C. albicans! S. aureus inocula for planktonic cell antimicrobial susceptibility testing.
- Results were compared to that of a standard susceptibility testing performed at the same time. Fluconazole was used as a positive control that demonstrates attenuated antimicrobial activities by C. albicans biofilm matrix. C. albicans biofilm matrix material was also used as a supplement to RPMI-1640 to assess the impact of C. albicans biofilm matrix on S. aureus biofilm growth.
- C. albicans biofilms by wild type DAY 185 and bgl2AA mutant strains were exposed to PG3 or PG4 at a sub-biofilm MIC (32 mg/L) or polymer-free growth medium for 24 h.
- C. albicans DAY 185 and bgl2AA mutant strains differ in the biofilm structure, with bgl2AA mutant strain forming a biofilm with less ⁇ -1,3 glucan in the extracellular matrix. Viable counts were performed.
- the efficacy of the polymers against biofilms was calculated as CFUs of biofilm treated with polymer divided by CFUs of biofilm exposed to polymer-free growth medium. The difference in the efficacy of polymers against wild type and mutant biofilms reflects the possible sequestering of the polymers by the biofilm matrix materials.
- a re-growth assay following catheter antimicrobial lock was performed to examine the efficacy of polymers used in accordance with the invention and ethanol as catheter lock solutions (CLS) against polymicrobial biofilms.
- CLS catheter lock solutions
- Preformed 24-hour biofilms in 96 well microplates were exposed to antimicrobial agents for 18 h, including ethanol at concentrations ranging from 10% to 80%, and polymers of this invention, designated as PG3 and PG4 at 64- 1024 mg/L.
- Biofilms were washed three times with saline to remove the residual antimicrobial agents. Two hundred microliter volumes of TSB were then added to each well and microplates were incubated at 35° C for a further 48 h.
- a microplate shaker (speed 2) (Titreteck, Flow laboratories, Germany) was used to facilitate the multiplication and release of any living cells remaining in the biofilms. After 48 h, 150 of the contents in each well in the microplate was transferred to a U-bottom microplate and examined visually for turbidity. The lowest concentration of antimicrobial agents corresponding to clear wells was defined as the minimum biofilm eradication concentration (MBEC) for successful use as CLS.
- MBEC biofilm eradication concentration
- S. aureus The interaction between S. aureus and C. albicans in a polymicrobial biofilm depends on the ability of C. albicans to form hyphae, and the hyphal surface protein Als3 is required for this interaction.
- the presence of S. aureus was not limited to C. albicans hyphal cells; some clumps of S. aureus were evident in the inter-cellular space of the biofilm scaffold (Fig. 2A). It is proposed that the C. albicans biofilm matrix could serve as another adhesion factor for S. aureus to integrate into the polymicrobial biofilm. Consistent with this proposition, single S. aureus biofilms grown in the presence of isolated matrix material from the C.
- albicans biofilm reached a significantly higher CFU count (1.5 fold) compared to that in the absence of C. albicans biofilm matrix (Table 2). Scanning electron microscopy supported this conclusion, showing that in the presence of C. albicans biofilm matrix S. aureus could form significantly more pronounced biofilms than in the absence of matrix (Fig. 2B). It appeared that the matrix could attach to the serum coated silicone disc surface, and serve as a "glue" for the bacterium. Next, a C. albicans biofilm matrix mutant was used to test for the involvement of fungal biofilm matrix in S. aureus integration into the biofilm. C. albicans cell wall remodelling mutants that display reduced biofilm matrix levels of ⁇ -1, 3 glucan has been reported.
- albicans bgl2AA strain attracted less S. aureus cells compared to wild type C. albicans DAY185 (Fig. 2C). This result supports the idea that extracellular biofilm matrix secreted by the fungus contributes to the association of S. aureus in the mixed biofilm.
- Vancomycin 1 >1024 Amphotericin B 1 1
- biofilms A major contributor to the increased antimicrobial resistance of biofilms (bacterial, fungal and polymicrobial) is the extracellular matrix material.
- the biofilm MICs for the guanylated polymers used in accordance with the invention were only modestly higher than planktonic MICs, but we reproducibly observed this difference, suggesting that the biofilm growth mode confers some resistance to these compounds.
- Salvage of infected catheters is important in clinical situations where catheter removal is not the preferred option. This can be achieved by the so-called "antimicrobial lock therapy" or ALT, which entails treatment of the catheter with antimicrobial agents to kill the infecting organisms. Ethanol has been reported as an effective lock solution against C. albicans-S. aureus polymicrobial biofilms, but its application in ALT has been hindered by side effects. We show here that one application of the invention is a catheter lock agent. Polymicrobial biofilms were formed in 96-well microplates, followed by application of ethanol or guanylated polymethacrylates to biofilms and overnight exposure.
- PG3 at 128 mg/mL or PG4 at 256 mg/L were effective in salvaging biomaterials infected by polymicrobial biofilms, effectively eradicating C. albicans-S. aureus biofilms. This effect was comparable to exposure to 20% ethanol overnight (Table 5).
- PG3 and PG4 at minimum biofilm eradication concentration (MBEC) display very low human cell toxicity and might be used as an alternative to ethanol for catheter lock solutions.
- the polymers can be formulated according to standard pharmaceutical protocols to provide stable/effective dosing of polymers to wound. Typically they could be disperse within an appropriate matrix to provide sustained release of the polymer to the wound over time. Typical matrix could include alginates, chitosan, starches, dextran, glucan, gelatin to name a few.
- Typical matrix could include alginates, chitosan, starches, dextran, glucan, gelatin to name a few.
Landscapes
- Health & Medical Sciences (AREA)
- Life Sciences & Earth Sciences (AREA)
- General Health & Medical Sciences (AREA)
- Chemical & Material Sciences (AREA)
- Veterinary Medicine (AREA)
- Public Health (AREA)
- Animal Behavior & Ethology (AREA)
- Epidemiology (AREA)
- Medicinal Chemistry (AREA)
- Engineering & Computer Science (AREA)
- Materials Engineering (AREA)
- Hematology (AREA)
- Biomedical Technology (AREA)
- Molecular Biology (AREA)
- Dermatology (AREA)
- Oral & Maxillofacial Surgery (AREA)
- Transplantation (AREA)
- Pharmacology & Pharmacy (AREA)
- Chemical Kinetics & Catalysis (AREA)
- Agronomy & Crop Science (AREA)
- Zoology (AREA)
- Environmental Sciences (AREA)
- Wood Science & Technology (AREA)
- Dentistry (AREA)
- Plant Pathology (AREA)
- Pest Control & Pesticides (AREA)
- Communicable Diseases (AREA)
- Oncology (AREA)
- General Chemical & Material Sciences (AREA)
- Organic Chemistry (AREA)
- Nuclear Medicine, Radiotherapy & Molecular Imaging (AREA)
- Addition Polymer Or Copolymer, Post-Treatments, Or Chemical Modifications (AREA)
- Pharmaceuticals Containing Other Organic And Inorganic Compounds (AREA)
- Micro-Organisms Or Cultivation Processes Thereof (AREA)
- Materials For Medical Uses (AREA)
Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| AU2015900721A AU2015900721A0 (en) | 2015-03-02 | Biofilms | |
| PCT/AU2016/050134 WO2016138558A1 (en) | 2015-03-02 | 2016-03-02 | Methods for adversely affecting biofilms |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP3265143A1 true EP3265143A1 (en) | 2018-01-10 |
| EP3265143A4 EP3265143A4 (en) | 2018-08-29 |
Family
ID=56849152
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP16758375.6A Withdrawn EP3265143A4 (en) | 2015-03-02 | 2016-03-02 | Methods for adversely affecting biofilms |
Country Status (6)
| Country | Link |
|---|---|
| US (2) | US20180344763A1 (en) |
| EP (1) | EP3265143A4 (en) |
| JP (1) | JP2018508538A (en) |
| CN (1) | CN107708757A (en) |
| AU (1) | AU2016228115C1 (en) |
| WO (1) | WO2016138558A1 (en) |
Families Citing this family (7)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US11197909B2 (en) * | 2017-07-12 | 2021-12-14 | Cidara Therapeutics, Inc. | Compositions and methods for the treatment of fungal infections |
| WO2021182121A1 (en) * | 2020-03-13 | 2021-09-16 | 学校法人慈恵大学 | Biofilm transparentizing reagent, and biofilm observation method using said transparentizing reagent |
| WO2022009986A1 (en) * | 2020-07-09 | 2022-01-13 | 三井化学株式会社 | Dental adhesive composition and dental material |
| JP2025523244A (en) | 2022-07-22 | 2025-07-17 | スパイグラス ファーマ インコーポレイテッド | Intraocular drug delivery systems and methods of use |
| KR20250126000A (en) * | 2022-12-21 | 2025-08-22 | 니치유 가부시키가이샤 | Copolymer and ophthalmic composition using the same |
| CN116178600B (en) * | 2023-01-10 | 2024-12-31 | 华南理工大学 | Polymethacrylate guanidine salt and preparation method and application thereof |
| TW202540326A (en) * | 2024-03-29 | 2025-10-16 | 日商日油股份有限公司 | Copolymer and ophthalmic composition using the same |
Family Cites Families (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP1390158A4 (en) * | 2001-04-23 | 2004-06-09 | Massachusetts Inst Technology | ANTIMICROBIAL POLYMERIC SURFACES |
| AU2006265707B2 (en) * | 2005-07-01 | 2012-06-14 | Kane Biotech Inc. | Antimicrobial compositions for inhibiting growth and proliferation of a microbial biofilm on medical devices |
| US8512731B2 (en) * | 2007-11-13 | 2013-08-20 | Medtronic Minimed, Inc. | Antimicrobial coatings for medical devices and methods for making and using them |
| AU2009249589A1 (en) * | 2008-05-19 | 2009-11-26 | Microbiotix, Inc. | Inhibitors of bacterial biofilm formation |
| US8829053B2 (en) * | 2011-12-07 | 2014-09-09 | Rochal Industries Llp | Biocidal compositions and methods of using the same |
-
2016
- 2016-03-02 US US15/555,247 patent/US20180344763A1/en not_active Abandoned
- 2016-03-02 AU AU2016228115A patent/AU2016228115C1/en active Active
- 2016-03-02 WO PCT/AU2016/050134 patent/WO2016138558A1/en not_active Ceased
- 2016-03-02 JP JP2017546888A patent/JP2018508538A/en not_active Ceased
- 2016-03-02 EP EP16758375.6A patent/EP3265143A4/en not_active Withdrawn
- 2016-03-02 CN CN201680025456.0A patent/CN107708757A/en active Pending
-
2019
- 2019-05-13 US US16/410,665 patent/US20190269718A1/en not_active Abandoned
Also Published As
| Publication number | Publication date |
|---|---|
| US20190269718A1 (en) | 2019-09-05 |
| WO2016138558A1 (en) | 2016-09-09 |
| AU2016228115B2 (en) | 2020-10-15 |
| AU2016228115C1 (en) | 2021-01-14 |
| EP3265143A4 (en) | 2018-08-29 |
| AU2016228115A1 (en) | 2017-09-28 |
| JP2018508538A (en) | 2018-03-29 |
| US20180344763A1 (en) | 2018-12-06 |
| CN107708757A (en) | 2018-02-16 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| US20190269718A1 (en) | Methods for adversely affecting biofilms | |
| de Vries et al. | DNA nanoparticles for ophthalmic drug delivery | |
| Albright et al. | Self-defensive antibiotic-loaded layer-by-layer coatings: Imaging of localized bacterial acidification and pH-triggering of antibiotic release | |
| Huang et al. | Selective imaging and inactivation of bacteria over mammalian cells by imidazolium-substituted polythiophene | |
| Sims et al. | Enhanced design and formulation of nanoparticles for anti-biofilm drug delivery | |
| Maya et al. | Efficacy of tetracycline encapsulated O-carboxymethyl chitosan nanoparticles against intracellular infections of Staphylococcus aureus | |
| CN111808886B (en) | In vitro or ex vivo methods for promoting entry of primed agents into cells | |
| WO2013003887A1 (en) | Nucleic acid complex | |
| Walvekar et al. | Fatty acid conjugated pyridinium cationic amphiphiles as antibacterial agents and self-assembling nano carriers | |
| Wan et al. | Counterion-induced antibiotic-based small-molecular micelles for methicillin-resistant Staphylococcus aureus infections | |
| Ko et al. | Reductively-sheddable cationic nanocarriers for dual chemotherapy and gene therapy with enhanced release | |
| Cao et al. | Mechanochemical synthesis of nano–ciprofloxacin with enhanced antibacterial activity | |
| Sabri et al. | Fabrication and characterisation of poly (sulfonated) and poly (sulfonic acid) dissolving microneedles for delivery of antibiotic and antifungal agents | |
| Asensio-López et al. | Multimodal evaluation of drug antibacterial activity reveals cinnamaldehyde analog anti-biofilm effects against Haemophilus influenzae | |
| Park et al. | Surface-charge tuned polymeric nanoemulsions for carvacrol delivery in interkingdom biofilms | |
| Ciocîlteu et al. | Development of hybrid implantable local release systems based on PLGA nanoparticles with applications in bone diseases | |
| KR101465866B1 (en) | Nanocomposite of Biocompatible PHEMA derivatives/Ag having antibacterial and antifouling activity | |
| Harvey et al. | Antimicrobial graft copolymer gels | |
| Zhang et al. | UV-responsive multilayers with multiple functions for biofilm destruction and tissue regeneration | |
| Liu et al. | The study of antibacterial activity of cationic poly (β-amino ester) regulating by amphiphilic balance | |
| US20140356433A1 (en) | Pharmaceutical Carrier and Drug Structure Using the Same | |
| Sharma et al. | Antimicrobial activity of microgels with an immobilized copper (ii) complex linked to cross-linking and composition | |
| Eita et al. | Coated Zein Polymeric Nanoparticles Loaded with Amlodipine as a Repurposed Antibacterial Ocular Cure for MRSA-Induced Infection: Optimization, In Vitro, Ex Vivo, and In Vivo Assessments | |
| WO2014190398A1 (en) | Inhibition of amyloid fibril formation | |
| KR101651170B1 (en) | Composition for preventing formation of biofilm comprising rhamnolipid and method for preventing formation of biofilm using the composition |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: THE INTERNATIONAL PUBLICATION HAS BEEN MADE |
|
| PUAI | Public reference made under article 153(3) epc to a published international application that has entered the european phase |
Free format text: ORIGINAL CODE: 0009012 |
|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: REQUEST FOR EXAMINATION WAS MADE |
|
| 17P | Request for examination filed |
Effective date: 20170905 |
|
| AK | Designated contracting states |
Kind code of ref document: A1 Designated state(s): AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR |
|
| AX | Request for extension of the european patent |
Extension state: BA ME |
|
| DAV | Request for validation of the european patent (deleted) | ||
| DAX | Request for extension of the european patent (deleted) | ||
| A4 | Supplementary search report drawn up and despatched |
Effective date: 20180730 |
|
| RIC1 | Information provided on ipc code assigned before grant |
Ipc: A01P 1/00 20060101ALI20180724BHEP Ipc: A61K 31/785 20060101ALI20180724BHEP Ipc: A61L 29/04 20060101AFI20180724BHEP Ipc: A61K 31/13 20060101ALI20180724BHEP Ipc: A01N 25/10 20060101ALI20180724BHEP Ipc: A61K 31/04 20060101ALI20180724BHEP Ipc: A61L 2/18 20060101ALI20180724BHEP Ipc: A61K 31/155 20060101ALI20180724BHEP Ipc: A01N 47/44 20060101ALI20180724BHEP |
|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: EXAMINATION IS IN PROGRESS |
|
| 17Q | First examination report despatched |
Effective date: 20191206 |
|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: THE APPLICATION IS DEEMED TO BE WITHDRAWN |
|
| 18D | Application deemed to be withdrawn |
Effective date: 20210330 |